患有注意力缺陷/多动障碍 (ADHD) 的儿童经常因执行功能、时间处理和视觉空间记忆受损而挣扎,这是主要注意力不集中表现 (ADHD-PI) 的标志,由海马体提供。然而,所涉及的特定基因/蛋白质以及它们如何塑造海马结构以影响 ADHD 行为仍然知之甚少。作为一种探索性工具,来自具有 ADHD-PI 定义特征的甲状腺激素反应蛋白过表达 (THRSP OE) 小鼠的海马齿状回组织被用于蛋白质组学。综合蛋白质组学和网络分析揭示了参与 Wnt 信号传导的蛋白质网络发生了改变。与 THRSP 敲除 (KO) 小鼠相比,THRSP OE 小鼠表现出注意力和记忆力受损,伴随着失调的 Wnt 信号影响海马齿状回细胞增殖和神经干细胞 (NSC) 活性标志物的表达。此外,结合暴露于丰富的环境和跑步机运动可以改善 THRSP OE 小鼠的行为缺陷以及 Wnt 信号和 NSC 活动。这些发现显示了 ADHD-PI 表现特有的新标记,与神经发育过程中对细胞命运决定、迁移、极性和神经模式至关重要的古老和进化的 Wnt 信号通路融合。这些来自 THRSP OE 小鼠的发现支持 Wnt 信号在神经系统疾病中的作用,尤其是 ADHD-PI 表现。结合暴露于丰富的环境和跑步机运动可以改善 THRSP OE 小鼠的行为缺陷以及 Wnt 信号和 NSC 活动。这些发现显示了 ADHD-PI 表现特有的新标记,与神经发育过程中对细胞命运决定、迁移、极性和神经模式至关重要的古老和进化的 Wnt 信号通路融合。这些来自 THRSP OE 小鼠的发现支持 Wnt 信号在神经系统疾病中的作用,尤其是 ADHD-PI 表现。结合暴露于丰富的环境和跑步机运动可以改善 THRSP OE 小鼠的行为缺陷以及 Wnt 信号和 NSC 活动。这些发现显示了 ADHD-PI 表现特有的新标记,与神经发育过程中对细胞命运决定、迁移、极性和神经模式至关重要的古老和进化的 Wnt 信号通路融合。这些来自 THRSP OE 小鼠的发现支持 Wnt 信号在神经系统疾病中的作用,尤其是 ADHD-PI 表现。
"点击查看英文标题和摘要"
Hippocampal dentate gyri proteomics reveals Wnt signaling involvement in the behavioral impairment in the THRSP-overexpressing ADHD mouse model
Children with attention-deficit/hyperactivity disorder (ADHD) often struggle with impaired executive function, temporal processing, and visuospatial memory, hallmarks of the predominantly inattentive presentation (ADHD-PI), subserved by the hippocampus. However, the specific genes/proteins involved and how they shape hippocampal structures to influence ADHD behavior remain poorly understood. As an exploratory tool, hippocampal dentate gyri tissues from thyroid hormone-responsive protein overexpressing (THRSP OE) mice with defining characteristics of ADHD-PI were utilized in proteomics. Integrated proteomics and network analysis revealed an altered protein network involved in Wnt signaling. Compared with THRSP knockout (KO) mice, THRSP OE mice showed impaired attention and memory, accompanied by dysregulated Wnt signaling affecting hippocampal dentate gyrus cell proliferation and expression of markers for neural stem cell (NSC) activity. Also, combined exposure to an enriched environment and treadmill exercise could improve behavioral deficits in THRSP OE mice and Wnt signaling and NSC activity. These findings show new markers specific to the ADHD-PI presentation, converging with the ancient and evolutionary Wnt signaling pathways crucial for cell fate determination, migration, polarity, and neural patterning during neurodevelopment. These findings from THRSP OE mice support the role of Wnt signaling in neurological disorders, particularly ADHD-PI presentation.